Papers with domain-aware augmentation

1 papers
Few-Shot (Dis)Agreement Identification in Online Discussions with Regularized and Augmented Meta-Learning (2022.findings-emnlp)

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Challenge: Existing annotated datasets do not cover all topics of interest.
Approach: They propose a metric-based meta-learning approach that trains a meta-learner with two key abilities: decoding and generalizing domains.
Outcome: The proposed approach can be quickly applied to analyze opinions for new topics with few labeled instances.

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